Contextual Pyramid Attention Network for Building Segmentation in Aerial Imagery

Clint Sebastian, Raffaele Imbriaco, Egor Bondarau, Peter H.N. de With

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Abstract

Building extraction from aerial images has several applications in problems such as urban planning, change detection, and disaster management. With the increasing availability of data, Convolutional Neural Networks (CNNs) for semantic segmentation of remote sensing imagery has improved significantly in recent years. However, convolutions operate in local neighborhoods and fail to
capture non-local features that are essential in semantic understanding of aerial images. In this work, we propose to improve building segmentation of different sizes by capturing long-range dependencies using contextual pyramid attention (CPA). The pathways process the input at multiple scales efficiently and method obtains state-of-the-art performance on the Inria Aerial Image Labelling
Dataset with minimal computation costs. Our method improves 1.8 points over current state-of-the-art methods and 12.6 points higher than existing baselines on the Intersection over Union (IoU) metric without any post-processing.
Original languageEnglish
Title of host publicationProceedings of the 2021 Symposium on Information Theory and Signal Processing in the Benelux May 20-21, TU Eindhoven
EditorsBoris Skoric, Ruud van Sloun
Place of PublicationEindhoven
PublisherEindhoven University of Technology
Pages8-16
ISBN (Print)978-90-386-5318-1
Publication statusPublished - 2021
Event41st WIC Symposium on Information Theory and Signal Processing in the Benelux - Technical University Eindhoven, Eindhoven, Netherlands
Duration: 20 May 202121 May 2021
Conference number: 41
https://sitb2021.win.tue.nl/

Conference

Conference41st WIC Symposium on Information Theory and Signal Processing in the Benelux
Country/TerritoryNetherlands
CityEindhoven
Period20/05/2121/05/21
Internet address

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